Oxygen Electrochemistry as a Cornerstone for Sustainable Energy Conversion

Electrochemistry will play a vital role in creating sustainable energy solutions in the future, particularly for the conversion and storage of electrical into chemical energy in electrolysis cells, and the reverse conversion and utilization of the stored energy in galvanic cells. The common challeng...

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Published inAngewandte Chemie International Edition Vol. 53; no. 1; pp. 102 - 121
Main Authors Katsounaros, Ioannis, Cherevko, Serhiy, Zeradjanin, Aleksandar R., Mayrhofer, Karl J. J.
Format Journal Article
LanguageEnglish
Published Weinheim WILEY-VCH Verlag 03.01.2014
WILEY‐VCH Verlag
Wiley Subscription Services, Inc
EditionInternational ed. in English
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Summary:Electrochemistry will play a vital role in creating sustainable energy solutions in the future, particularly for the conversion and storage of electrical into chemical energy in electrolysis cells, and the reverse conversion and utilization of the stored energy in galvanic cells. The common challenge in both processes is the development of—preferably abundant—nanostructured materials that can catalyze the electrochemical reactions of interest with a high rate over a sufficiently long period of time. An overall understanding of the related processes and mechanisms occurring under the operation conditions is a necessity for the rational design of materials that meet these requirements. A promising strategy to develop such an understanding is the investigation of the impact of material properties on reaction activity/selectivity and on catalyst stability under the conditions of operation, as well as the application of complementary in situ techniques for the investigation of catalyst structure and composition. The deployment of sustainable energy technologies is limited by severe challenges in the design of nanostructured electrocatalysts. Efficient catalysts must meet the criteria of high activity, long‐term stability, and abundance of the materials used. Integrated solutions will be provided only by multidisciplinary approaches that include fundamental electrochemistry, materials science, and chemical engineering. ORR/OER=O2 reduction/evolution reaction.
Bibliography:ark:/67375/WNG-RCHTZV20-9
BMBF - No. 033RC1101 A
ArticleID:ANIE201306588
istex:BD1CFC8A4EAEA2B4BBED79477E46C51FC6D36752
ObjectType-Article-1
SourceType-Scholarly Journals-1
ObjectType-Feature-2
content type line 23
ISSN:1433-7851
1521-3773
DOI:10.1002/anie.201306588